基于40纳米厚纳米热电硅膜的红外热辐射计

IF 3.8 3区 物理与天体物理 Q2 INSTRUMENTS & INSTRUMENTATION Infrared Physics & Technology Pub Date : 2025-03-01 Epub Date: 2025-01-22 DOI:10.1016/j.infrared.2025.105720
Anton Murros, Kuura Sovanto, Jonna Tiira, Kirsi Tappura, Mika Prunnila, Aapo Varpula
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引用次数: 0

摘要

目前,工作在中长波红外(MWIR和LWIR)的红外光电探测器在目标灵敏度和探测速度最高时主要采用低温冷却量子传感器。纳米热电技术为具有竞争力的非冷却红外热辐射计技术提供了一条途径,该技术可以获得高速度和灵敏度,低功耗操作和成本效益。我们展示了纳米热电LWIR热辐射计,对10µm左右的LWIR具有快速和高灵敏度的响应。这些器件基于超薄硅膜,利用热电元件中硅纳米膜的尺寸缩放,并与具有亚波长吸收结构的金属纳米膜相结合。快速设备性能源于低热容设计,其中热电光束既充当机械支撑又充当传感器元件。此外,通过减小热电束的厚度,由于声子边界散射增强,热导率降低,从而增加灵敏度。纳米热电LWIR热辐射计基于40纳米厚的n型和p型硅膜,LWIR(电压)响应度可达1636 V/W和1350 V/W,时间常数在300-600µs范围内,比探测率可达1.56 × 108 cmHz1/2/W。我们还研究了使用重掺杂的N++衬底来增加光学腔的反向反射,从而使波长在8-10 μ m之间的Si衬底反射率从30%增加到70% - 75%,从而使器件响应性增加约20%。
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Infrared bolometers based on 40-nm-Thick Nano-Thermoelectric silicon membranes
State-of the-art infrared photodetectors operating in the mid- and long-wavelength infrared (MWIR and LWIR) are largely dominated by cryogenically cooled quantum sensors when the target is the highest sensitivity and detection speeds. Nano-thermoelectrics provide a route towards competitive uncooled infrared bolometer technology that can obtain high speed and sensitivity, low-power operation, and cost-effectiveness. We demonstrate nano-thermoelectric LWIR bolometers with fast and high-sensitivity response to LWIR around 10 µm. These devices are based on ultra-thin silicon membranes that utilize the dimensional scaling of silicon nanomembranes in thermoelectric elements and are combined with metallic nanomembranes with subwavelength absorber structures. The fast device performance stems from a low heat capacity design where the thermoelectric beams act both as mechanical supports and transducer elements. Furthermore, by scaling down the thickness of the thermoelectric beams the thermal conductivity is reduced owing to enhanced phonon boundary scattering, resulting in increased sensitivity. The nano-thermoelectric LWIR bolometers are based on 40-nm-thick n- and p-type silicon membranes with LWIR (voltage) responsivities up to 1636 V/W and 1350 V/W and time constants in the range of 300–600 µs, resulting in specific detectivities up to 1.56 × 108 cmHz1/2/W. We also investigate the use of a heavily doped N++ substrate to increase optical cavity back reflection, resulting in an increased Si substrate reflectance from 30 % to 70 %–75 % for wavelengths between 8–10 µm, resulting in an increase in device responsivity by approximately 20 %.
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来源期刊
CiteScore
5.70
自引率
12.10%
发文量
400
审稿时长
67 days
期刊介绍: The Journal covers the entire field of infrared physics and technology: theory, experiment, application, devices and instrumentation. Infrared'' is defined as covering the near, mid and far infrared (terahertz) regions from 0.75um (750nm) to 1mm (300GHz.) Submissions in the 300GHz to 100GHz region may be accepted at the editors discretion if their content is relevant to shorter wavelengths. Submissions must be primarily concerned with and directly relevant to this spectral region. Its core topics can be summarized as the generation, propagation and detection, of infrared radiation; the associated optics, materials and devices; and its use in all fields of science, industry, engineering and medicine. Infrared techniques occur in many different fields, notably spectroscopy and interferometry; material characterization and processing; atmospheric physics, astronomy and space research. Scientific aspects include lasers, quantum optics, quantum electronics, image processing and semiconductor physics. Some important applications are medical diagnostics and treatment, industrial inspection and environmental monitoring.
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